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1.
Biophys J ; 103(6): 1400-8, 2012 Sep 19.
Artigo em Inglês | MEDLINE | ID: mdl-22995513

RESUMO

Most bacteria live in the form of adherent communities forming three-dimensional material anchored to artificial or biological surfaces, with profound impact on many human activities. Biofilms are recognized as complex systems but their physical properties have been mainly studied from a macroscopic perspective. To determine biofilm local mechanical properties, reveal their potential heterogeneity, and investigate their relation to molecular traits, we have developed a seemingly new microrheology approach based on magnetic particle infiltration in growing biofilms. Using magnetic tweezers, we achieved what was, to our knowledge, the first three-dimensional mapping of the viscoelastic parameters on biofilms formed by the bacterium Escherichia coli. We demonstrate that its mechanical profile may exhibit elastic compliance values spread over three orders of magnitude in a given biofilm. We also prove that heterogeneity strongly depends on external conditions such as growth shear stress. Using strains genetically engineered to produce well-characterized cell surface adhesins, we show that the mechanical profile of biofilm is exquisitely sensitive to the expression of different surface appendages such as F pilus or curli. These results provide a quantitative view of local mechanical properties within intact biofilms and open up an additional avenue for elucidating the emergence and fate of the different microenvironments within these living materials.


Assuntos
Biofilmes/crescimento & desenvolvimento , Escherichia coli/fisiologia , Imãs , Microtecnologia/métodos , Adesinas Bacterianas/metabolismo , Fenômenos Biomecânicos , Elasticidade , Escherichia coli/genética , Fímbrias Bacterianas/genética , Fímbrias Bacterianas/fisiologia , Regulação Bacteriana da Expressão Gênica , Reologia , Viscosidade
2.
J Vis Exp ; (87)2014 May 02.
Artigo em Inglês | MEDLINE | ID: mdl-24837001

RESUMO

Bacterial adhesion and growth on interfaces lead to the formation of three-dimensional heterogeneous structures so-called biofilms. The cells dwelling in these structures are held together by physical interactions mediated by a network of extracellular polymeric substances. Bacterial biofilms impact many human activities and the understanding of their properties is crucial for a better control of their development - maintenance or eradication - depending on their adverse or beneficial outcome. This paper describes a novel methodology aiming to measure in situ the local physical properties of the biofilm that had been, until now, examined only from a macroscopic and homogeneous material perspective. The experiment described here involves introducing magnetic particles into a growing biofilm to seed local probes that can be remotely actuated without disturbing the structural properties of the biofilm. Dedicated magnetic tweezers were developed to exert a defined force on each particle embedded in the biofilm. The setup is mounted on the stage of a microscope to enable the recording of time-lapse images of the particle-pulling period. The particle trajectories are then extracted from the pulling sequence and the local viscoelastic parameters are derived from each particle displacement curve, thereby providing the 3D-spatial distribution of the parameters. Gaining insights into the biofilm mechanical profile is essential from an engineer's point of view for biofilm control purposes but also from a fundamental perspective to clarify the relationship between the architectural properties and the specific biology of these structures.


Assuntos
Fenômenos Fisiológicos Bacterianos , Técnicas Bacteriológicas/métodos , Biofilmes , Magnetismo/métodos , Escherichia coli/genética , Escherichia coli/fisiologia , Fator F/genética , Magnetismo/instrumentação , Plasmídeos/genética
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